Cross flow and heat transfer past a permeable stretching/shrinking sheet in a hybrid nanofluid
International Journal of Numerical Methods for Heat & Fluid Flow
ISSN: 0961-5539
Article publication date: 26 September 2020
Issue publication date: 19 March 2021
Abstract
Purpose
The purpose of this paper is to study the laminar boundary layer cross flow and heat transfer on a rotational stagnation-point flow over either a stretching or shrinking porous wall submerged in hybrid nanofluids. The involved boundary layers are of stream-wise type with stretching/shrinking process along the surface.
Design/methodology/approach
Using appropriate similarity variables the partial differential equations are reduced to ordinary (similarity) differential equations. The reduced system of equations is solved analytically (by high-order perturbed field propagation for small to moderate stretching/shrinking parameter and low-order perturbation for large stretching/shrinking parameter) and numerically using the function bvp4c from MATLAB for different values of the governing parameters.
Findings
It was found that the basic similarity equations admit dual (upper and lower branch) solutions for both stretching/shrinking surfaces. Moreover, performing a linear stability analysis, it was confirmed that the upper branch solution is realistic (physically realizable), while the lower branch solution is not physically realizable in practice. These dual solutions will be studied in the present paper.
Originality/value
The authors believe that all numerical results are new and original and have not been published before for the present problem.
Keywords
Acknowledgements
The work of all four authors has been supported from the grant PN-III-P4-ID-PCE-2016–0036, UEFISCDI, Romania. The authors wish also to express their thanks to the very competent Referees for the very good comments and suggestions.
Citation
Roşca, N.C., Roşca, A.V., Jafarimoghaddam, A. and Pop, I. (2021), "Cross flow and heat transfer past a permeable stretching/shrinking sheet in a hybrid nanofluid", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 31 No. 4, pp. 1295-1319. https://doi.org/10.1108/HFF-05-2020-0298
Publisher
:Emerald Publishing Limited
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